Dynamic Grids for Finite-Difference Schemes in Musical Instrument Simulations

S. Willemsen, S. Bilbao, M. Ducceschi, S. Serafin
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引用次数: 2

Abstract

For physical modelling sound synthesis, many techniques are available; time-stepping methods (e.g., finite-difference time-domain (FDTD) methods) have an advantage of flexibility and generality in terms of the type of systems they can model. These methods do, however, lack the capability of easily handling smooth parameter changes while retaining optimal simulation quality and stability, something other techniques are better suited for. In this paper, we propose an efficient method to smoothly add and remove grid points from a FDTD simulation under sub-audio rate parameter variations. This allows for dynamic parameter changes in physical models of musical instruments. An instrument such as the trombone can now be modelled using FDTD methods, as well as physically impossible instruments where parameters such as e.g. material density or its geometry can be made time-varying. Results show that the method does not produce (visible) artifacts and stability analysis is ongoing.
乐器仿真中有限差分格式的动态网格
对于物理建模声音合成,有许多技术可用;时间步进方法(例如,时域有限差分方法)在可以建模的系统类型方面具有灵活性和通用性的优势。然而,这些方法确实缺乏在保持最佳模拟质量和稳定性的同时轻松处理平滑参数变化的能力,这是其他技术更适合的。在本文中,我们提出了一种有效的方法来平滑地在亚音频速率参数变化的FDTD仿真中添加和删除网格点。这允许乐器物理模型中的动态参数变化。像长号这样的乐器现在可以使用时域有限差分方法建模,也可以使用物理上不可能的仪器,其中参数(例如材料密度或其几何形状)可以使其随时间变化。结果表明,该方法不会产生(可见的)伪影,稳定性分析正在进行中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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